首页> 外文期刊>Sensors >Optimization and Experimentation of Dual-Mass MEMS Gyroscope Quadrature Error Correction Methods
【24h】

Optimization and Experimentation of Dual-Mass MEMS Gyroscope Quadrature Error Correction Methods

机译:双质量MEMS陀螺仪正交误差校正方法的优化与实验

获取原文
           

摘要

This paper focuses on an optimal quadrature error correction method for the dual-mass MEMS gyroscope, in order to reduce the long term bias drift. It is known that the coupling stiffness and demodulation error are important elements causing bias drift. The coupling stiffness in dual-mass structures is analyzed. The experiment proves that the left and right masses’ quadrature errors are different, and the quadrature correction system should be arranged independently. The process leading to quadrature error is proposed, and the Charge Injecting Correction (CIC), Quadrature Force Correction (QFC) and Coupling Stiffness Correction (CSC) methods are introduced. The correction objects of these three methods are the quadrature error signal, force and the coupling stiffness, respectively. The three methods are investigated through control theory analysis, model simulation and circuit experiments, and the results support the theoretical analysis. The bias stability results based on CIC, QFC and CSC are 48 °/h, 9.9 °/h and 3.7 °/h, respectively, and this value is 38 °/h before quadrature error correction. The CSC method is proved to be the better method for quadrature correction, and it improves the Angle Random Walking (ARW) value, increasing it from 0.66 °/√h to 0.21 °/√h. The CSC system general test results show that it works well across the full temperature range, and the bias stabilities of the six groups’ output data are 3.8 °/h, 3.6 °/h, 3.4 °/h, 3.1 °/h, 3.0 °/h and 4.2 °/h, respectively, which proves the system has excellent repeatability.
机译:本文针对双质量MEMS陀螺仪重点研究了一种最佳正交误差校正方法,以减少长期偏置漂移。众所周知,耦合刚度和解调误差是引起偏置漂移的重要因素。分析了双质量结构的耦合刚度。实验证明,左右质量的正交误差不同,正交校正系统应独立布置。提出了导致正交误差的过程,并介绍了电荷注入校正(CIC),正交力校正(QFC)和耦合刚度校正(CSC)方法。这三种方法的校正对象分别是正交误差信号,力和耦合刚度。通过控制理论分析,模型仿真和电路实验研究了这三种方法,结果为理论分析提供了依据。基于CIC,QFC和CSC的偏置稳定性结果分别为48°/ h,9.9°/ h和3.7°/ h,在进行正交误差校正之前,该值为38°/ h。事实证明,CSC方法是更好的正交校正方法,它可以改善角度随机游走(ARW)值,将其从0.66°/√h增加到0.21°/√h。 CSC系统的一般测试结果表明,它在整个温度范围内均能正常工作,六组输出数据的偏差稳定性分别为3.8°/ h,3.6°/ h,3.4°/ h,3.1°/ h,3.0 °/ h和4.2°/ h,分别证明该系统具有出色的可重复性。

著录项

获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号